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Standard Neutrino Spectrum from B-8 Decay

Nuclear Theory 2008-11-26 v2 Astrophysics High Energy Physics - Phenomenology Nuclear Experiment

Abstract

We present a systematic evaluation of the shape of the neutrino energy spectrum produced by beta-decay of 8^8B. We place special emphasis on determining the range of uncertainties permitted by existing laboratory data and theoretical ingredients (such as forbidden and radiative corrections). We review and compare the available experimental data on the 8^8B(β+)8(\beta^+){}^8Be(2α)(2\alpha) decay chain. We analyze the theoretical and experimental uncertainties quantitatively. We give a numerical representation of the best-fit (standard-model) neutrino spectrum, as well as two extreme deviations from the standard spectrum that represent the total (experimental and theoretical) effective ±3σ\pm3\sigma deviations. Solar neutrino experiments that are currently being developed will be able to measure the shape of the 8^8B neutrino spectrum above about 5 MeV. An observed distortion of the 8^8B solar neutrino spectrum outside the range given in the present work could be considered as evidence, at an effective significance level greater than three standard deviations, for physics beyond the standard electroweak model. We use the most recent available experimental data on the Gamow--Teller strengths in the A=37A=37 system to calculate the 8^8B neutrino absorption cross section on chlorine: σCl=(1.14±0.11)×1042\sigma_{\rm Cl}=(1.14\pm0.11)\times10^{-42}~cm2^2 (±3σ\pm3\sigma errors). The chlorine cross section is also given as a function of the neutrino energy. The 8^8B neutrino absorption cross section in gallium is σGa=(2.461.1+2.1)×1042\sigma_{\rm Ga}=(2.46^{+2.1}_{-1.1})\times10^{-42} cm2^2 (±3σ\pm3\sigma errors).

Keywords

Cite

@article{arxiv.nucl-th/9601044,
  title  = {Standard Neutrino Spectrum from B-8 Decay},
  author = {John N. Bahcall and E. Lisi and D. E. Alburger and L. De Braeckeleer and S. J. Freedman and J. Napolitano},
  journal= {arXiv preprint arXiv:nucl-th/9601044},
  year   = {2008}
}

Comments

Revised version, to appear in Phys. Rev. C